EP3872359A2 - Valve unit - Google Patents
Valve unit Download PDFInfo
- Publication number
- EP3872359A2 EP3872359A2 EP20206776.5A EP20206776A EP3872359A2 EP 3872359 A2 EP3872359 A2 EP 3872359A2 EP 20206776 A EP20206776 A EP 20206776A EP 3872359 A2 EP3872359 A2 EP 3872359A2
- Authority
- EP
- European Patent Office
- Prior art keywords
- pressure adjustment
- oil passage
- adjustment valve
- pressure
- valve body
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Granted
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Classifications
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16D—COUPLINGS FOR TRANSMITTING ROTATION; CLUTCHES; BRAKES
- F16D48/00—External control of clutches
- F16D48/02—Control by fluid pressure
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F15—FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
- F15B—SYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
- F15B13/00—Details of servomotor systems ; Valves for servomotor systems
- F15B13/02—Fluid distribution or supply devices characterised by their adaptation to the control of servomotors
- F15B13/024—Pressure relief valves
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F15—FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
- F15B—SYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
- F15B13/00—Details of servomotor systems ; Valves for servomotor systems
- F15B13/02—Fluid distribution or supply devices characterised by their adaptation to the control of servomotors
- F15B13/04—Fluid distribution or supply devices characterised by their adaptation to the control of servomotors for use with a single servomotor
- F15B13/0401—Valve members; Fluid interconnections therefor
- F15B13/0405—Valve members; Fluid interconnections therefor for seat valves, i.e. poppet valves
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F16—ENGINEERING ELEMENTS AND UNITS; GENERAL MEASURES FOR PRODUCING AND MAINTAINING EFFECTIVE FUNCTIONING OF MACHINES OR INSTALLATIONS; THERMAL INSULATION IN GENERAL
- F16K—VALVES; TAPS; COCKS; ACTUATING-FLOATS; DEVICES FOR VENTING OR AERATING
- F16K31/00—Actuating devices; Operating means; Releasing devices
- F16K31/02—Actuating devices; Operating means; Releasing devices electric; magnetic
- F16K31/06—Actuating devices; Operating means; Releasing devices electric; magnetic using a magnet, e.g. diaphragm valves, cutting off by means of a liquid
- F16K31/0644—One-way valve
- F16K31/0655—Lift valves
- F16K31/0665—Lift valves with valve member being at least partially ball-shaped
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F15—FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
- F15B—SYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
- F15B13/00—Details of servomotor systems ; Valves for servomotor systems
- F15B13/02—Fluid distribution or supply devices characterised by their adaptation to the control of servomotors
- F15B13/04—Fluid distribution or supply devices characterised by their adaptation to the control of servomotors for use with a single servomotor
- F15B13/044—Fluid distribution or supply devices characterised by their adaptation to the control of servomotors for use with a single servomotor operated by electrically-controlled means, e.g. solenoids, torque-motors
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F15—FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
- F15B—SYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
- F15B2211/00—Circuits for servomotor systems
- F15B2211/30—Directional control
- F15B2211/32—Directional control characterised by the type of actuation
- F15B2211/327—Directional control characterised by the type of actuation electrically or electronically
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F15—FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
- F15B—SYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
- F15B2211/00—Circuits for servomotor systems
- F15B2211/30—Directional control
- F15B2211/365—Directional control combined with flow control and pressure control
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F15—FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
- F15B—SYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
- F15B2211/00—Circuits for servomotor systems
- F15B2211/50—Pressure control
- F15B2211/505—Pressure control characterised by the type of pressure control means
- F15B2211/50509—Pressure control characterised by the type of pressure control means the pressure control means controlling a pressure upstream of the pressure control means
- F15B2211/50518—Pressure control characterised by the type of pressure control means the pressure control means controlling a pressure upstream of the pressure control means using pressure relief valves
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F15—FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
- F15B—SYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
- F15B2211/00—Circuits for servomotor systems
- F15B2211/50—Pressure control
- F15B2211/52—Pressure control characterised by the type of actuation
- F15B2211/521—Pressure control characterised by the type of actuation mechanically
- F15B2211/522—Pressure control characterised by the type of actuation mechanically actuated by biasing means, e.g. spring-actuated
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F15—FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
- F15B—SYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
- F15B2211/00—Circuits for servomotor systems
- F15B2211/50—Pressure control
- F15B2211/52—Pressure control characterised by the type of actuation
- F15B2211/528—Pressure control characterised by the type of actuation actuated by fluid pressure
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F15—FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
- F15B—SYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
- F15B2211/00—Circuits for servomotor systems
- F15B2211/50—Pressure control
- F15B2211/55—Pressure control for limiting a pressure up to a maximum pressure, e.g. by using a pressure relief valve
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F15—FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
- F15B—SYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
- F15B2211/00—Circuits for servomotor systems
- F15B2211/70—Output members, e.g. hydraulic motors or cylinders or control therefor
- F15B2211/705—Output members, e.g. hydraulic motors or cylinders or control therefor characterised by the type of output members or actuators
- F15B2211/7051—Linear output members
- F15B2211/7052—Single-acting output members
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- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F15—FLUID-PRESSURE ACTUATORS; HYDRAULICS OR PNEUMATICS IN GENERAL
- F15B—SYSTEMS ACTING BY MEANS OF FLUIDS IN GENERAL; FLUID-PRESSURE ACTUATORS, e.g. SERVOMOTORS; DETAILS OF FLUID-PRESSURE SYSTEMS, NOT OTHERWISE PROVIDED FOR
- F15B7/00—Systems in which the movement produced is definitely related to the output of a volumetric pump; Telemotors
- F15B7/06—Details
Definitions
- the present invention relates to a valve unit including a pressure adjustment valve configured to adjust the pressure of operating oil.
- JP H08-028601 A discloses a relief valve of a hydraulic, gradual increase type configured to adjust the pressure of operating oil to be supplied to a hydraulic clutch.
- a cylindrical valve case is housed in a valve housing; and a relief valve body and a control piston are housed in the valve case, with a spring being arranged between the relief valve body and the control piston.
- JP H08-028601 A discloses an oil chamber that has a pump port communicating with an operating oil supply passage, and an oil drain port for discharging operating oil, wherein the pressure of the operating oil supply passage is applied to the control piston via an orifice.
- the relief valve in JPH08-028601A is configured to perform pressure control, wherein, when operating oil is to be supplied to the hydraulic clutch, the relief valve is configured to gradually increase the pressure of the operating oil first, and then raise the pressure of the operating oil to a required level.
- the relief valve disclosed in JP H08-028601 A is capable of gradually increasing the pressure on the clutch, and is thus capable of reducing a shock occurring when the clutch is engaged.
- the relief valve however, has a complicated structure and leads to a cost increase.
- a pressure adjustment valve in the form of a relief valve including a valve body and a spring for urging the valve body to be closed.
- repeated compression of the spring decreases its urging force to be applied to the valve body, disadvantageously leading to inappropriate pressure adjustment.
- a valve unit comprising:
- the above characteristic arrangement involves keeping the pressure adjustment valve body at a closed position when the pressure of the supply oil passage is smaller than a set value and allowing the pressure adjustment valve body to open when the pressure of the supply oil passage is not smaller than the set value. This allows the supply oil passage to keep its pressure at not smaller than the set value.
- the above characteristic arrangement also includes a restriction member configured to restrict the amount of movement of the pressure adjustment valve body if the pressure of the supply oil passage has been increased sharply. This prevents the spring from becoming compressed greatly, and thereby prevents a decrease in its urging force.
- the above characteristic arrangement thereby allows a valve unit capable of continuing appropriate pressure adjustment to be produced without a cost increase.
- the above arrangement places a bar-shaped restriction member inside the coil of the spring.
- the restriction member can thus prevent excessive compression of the spring without the need to have a complicated structure.
- the above arrangement allows operating oil from the hydraulic pump to be supplied sequentially to the power steering unit, the valve unit, and the continuously variable transmission device in this order.
- the arrangement in this order allows (i) operating oil with a high pressure to be supplied to the power steering unit, (ii) operating oil with a pressure lower than the above pressure to be supplied via the valve unit to, for example, a hydraulic clutch, and (iii) operating oil with a pressure even lower than the above pressure to be supplied to the continuously variable transmission device as charge oil.
- the above arrangement thus makes it possible to avoid wasting operating oil and eliminates the need to include a plurality of hydraulic pumps.
- the above arrangement allows operating oil from the hydraulic pump to be supplied through the pump port to the supply oil passage. This allows the pressure adjustment valve to keep the pressure of the supply oil passage at not smaller than the set value.
- the above arrangement also allows operating oil from a portion of the supply oil passage which portion is upstream of the pressure adjustment valve to flow into a branch oil passage. This operating oil can then be supplied under control of a solenoid valve through the control port to an external hydraulic device.
- the above arrangement also allows operating oil discharged through the discharge port to be supplied to another hydraulic device if the pressure of the supply oil passage is not smaller than the set value.
- the operating oil exiting through the control port may be supplied to a friction clutch, and the pressure set by the pressure adjustment valve may be a value sufficient to keep the friction clutch engaged.
- such a friction clutch can be kept engaged even with the operating oil having a lower pressure, compared with the pressure of operating oil to be supplied to a hydraulic cylinder that drives e.g. a bucket and an arm of an excavator adapted to be connected to a tractor.
- operating oil supplied through the control port has a relatively low pressure. This allows the pressure on the spring to be relatively small, and effectively prevents plastic deformation of the spring.
- a tractor T is illustrated as an exemplary work machine (work vehicle), including a machine body A provided with a pair of right and left front wheels 1 and a pair of right and left rear wheels 2; an engine 4 covered by an engine hood 3 at a forward portion of the machine body A; and a driver section C at a rear portion of the machine body A.
- the tractor T further includes: a transmission case 5 in an area extending from a central portion of the machine body A to the back end thereof for varying the driving force of the engine 4; a lift cylinder 6 housed in the transmission case 5 at a rear upper portion thereof; and a pair of right and left lift arms 7 configured to be lifted and lowered in response to operation of the lift cylinder 6.
- the tractor T still further includes: a rear power take-off (PTO) shaft 8 protruding backward from the back end of the transmission case 5 for transmitting a driving force to e.g. a rotary tiller work implement (not shown) that is supported by the lift arms 7 to be lifted and lowered.
- the tractor T further includes a mid PTO shaft 9 protruding forward from a lower face of the transmission case 5 for driving another work implement (not shown) to be provided under the machine body A.
- the driver section C includes a driver's seat 11 between right and left rear-wheel fenders 10, a steering wheel 12 in front of the driver's seat 11, and a floor 13 under the driver's seat 11.
- the driver section C further includes: an output power control lever 14 protruding upward from a lever guide on an upper face of the rear-wheel fender 10 on the left side of the driver's seat 11; a lifting/lowering control lever 15 protruding upward from a lever guide on an upper face of the rear-wheel fender 10 on the right of the driver's seat 11; and a roll-over protection structure (ROPS) frame 16 standing erect behind the driver's seat 11 and having an inverted U-letter shape.
- ROPS roll-over protection structure
- the driver section C further includes an accelerator pedal 17 on the right side of the floor 13, and a brake pedal 18 on the left side of the floor 13 at a forward portion thereof.
- the output power control lever 14 is configured to control a PTO clutch 32 (an example of the "friction clutch”; see Fig. 3 ) in the transmission case 5 to switch the PTO clutch 32 between an engaged state to permit a driving force to be transmitted to the rear PTO shaft 8, and a disengaged state to block transmission of the driving force.
- the lifting/lowering control lever 15 is configured to control supply/discharge of operating oil to the lift cylinder 6 to thereby control the lifting/lowering operation of the lift arms 7.
- the ROPS frame 16 includes pillar-shaped portions standing erect at right and left positions, respectively, behind the driver's seat 11 and having upper ends thereof connected with each other. The ROPS frame 16 is configured to protect the driver seated on the driver's seat 11 in the event of roll-over of the machine body A.
- the transmission case 5 includes: a main drive shaft 21 configured to receive the driving force from the engine 4; a hydrostatic-type continuously variable transmission device 22 (hydrostatic transmission or HST) configured to steplessly vary (speed-change) the driving force from the main drive shaft 21; a varied output shaft 23 configured to transmit the driving force after it is varied steplessly by the continuously variable transmission device 22; a gear shift mechanism 24 configured to vary the driving force of the varied output shaft 23; and a differential gear 25 for the rear wheels 2 configured to receive the driving force from the gear shift mechanism 24.
- a main drive shaft 21 configured to receive the driving force from the engine 4
- a hydrostatic-type continuously variable transmission device 22 hydrostatic transmission or HST
- HST hydrostatic transmission or HST
- a varied output shaft 23 configured to transmit the driving force after it is varied steplessly by the continuously variable transmission device 22
- a gear shift mechanism 24 configured to vary the driving force of the varied output shaft 23
- a differential gear 25 for the rear wheels 2 configured to receive the driving force from the gear shift mechanism 24.
- the continuously variable transmission device 22 includes: a variable displacement pump 22a capable of changing the amount of operating oil to be discharged; and a hydraulic motor 22b configured to be rotated by the operating oil supplied from the variable displacement pump 22a.
- the continuously variable transmission device 22 is configured to steplessly adjust the drive rate of the hydraulic motor 22b by changing an amount of operating oil supplied from the variable displacement pump 22a.
- the amount of operating oil supplied from the variable displacement pump 22a is controlled depending on an amount of depression of the accelerator pedal 17 in the driver section C.
- the gear shift mechanism 24 includes: a plurality of gears capable of increasing/decreasing (accelerating/decelerating) the drive rate; and a shift gear capable of selectively meshing with one of a plurality of gears, whereby the driver can manually operate the shift gear to select a travel speed.
- the transmission case 5 is provided with: an intermediate drive shaft 27 configured to receive the driving force of the varied output shaft 23 via an intermediate power transmission gear mechanism 26; a front-wheel accelerating device 28 capable of increasing the drive rate of the intermediate drive shaft 27; and a front-wheel drive shaft 29 configured to transmit the driving force from the front-wheel accelerating device 28 to the front wheels 1.
- the intermediate power transmission gear mechanism 26 includes a front-wheel clutch section 26a capable of being manually operated to permit or block power transmission. Operating the front-wheel clutch section 26a to block power transmission sets the front wheels 1 to a non-driven state, whereas operating the front-wheel clutch section 26a to permit power transmission drives the front wheels 1.
- the front-wheel clutch section 26a is configured to be operated manually.
- the front-wheel accelerating device 28 includes: a hydraulic front-wheel accelerating clutch 28a (an example of the "friction clutch”; see Fig. 4 ); and an accelerating gear mechanism (not shown) capable of increasing the drive rate.
- the front-wheel accelerating clutch 28a is configured to be supplied with operating oil from a valve unit V as shown in Figs. 4 and 5 .
- the front-wheel accelerating clutch 28a is configured to bring a plurality of friction plates into contact with one another in response to the pressure of the supplied operating oil, to thereby transmit a driving force.
- the front-wheel accelerating clutch 28a is configured to be supplied with operating oil when the steering angle of the front wheels 1 exceeds a set value.
- the front-wheel accelerating clutch 28a is supplied with no operating oil while the steering wheel 12 is not turned greatly, e.g. when the machine body A is traveling straight.
- the driving force from the intermediate drive shaft 27 is transmitted to the front-wheel drive shaft 29 without varying the driving force, thereby allowing travel in a constant-rate driving state, in which the front wheels 1 are driven at a circumferential speed equal to that of the rear wheels 2.
- the front-wheel accelerating clutch 28a is supplied with operating oil.
- the driving force of the intermediate drive shaft 27 is increased by the accelerating gear mechanism before transmitting it to the front-wheel drive shaft 29, thereby causing the front wheels 1 to be driven at a circumferential speed higher than the circumferential speed of the rear wheels 2 and allowing the machine body A to turn with a small radius.
- the transmission case 5 includes: a work drive shaft 31 arranged coaxial with a portion of the main drive shaft 21 which extends through the continuously variable transmission device 22 in the front-back direction; the multi-disc friction type PTO clutch 32 configured to permit or block transmission of a driving force from the main drive shaft 21 to the work drive shaft 31; and a work transmission mechanism 33 configured to vary a driving force transmitted from the work drive shaft 31 to the rear PTO shaft 8.
- the transmission case 5 further includes, at a lower portion thereof, a lower drive shaft 35 configured to receive the driving force from the work drive shaft 31 via a work power transmission gear 34, and a lower power transmission gear mechanism 36 configured to transmit the driving force from the lower drive shaft 35 to the mid PTO shaft 9.
- the PTO clutch 32 is configured to bring a plurality of friction plates into contact with one another in response to supply of operating oil, to thereby transmit a driving force to the rear PTO shaft 8 and the mid PTO shaft 9.
- the work power transmission gear 34 includes a work clutch section 34a capable of being manually operated to permit or block power transmission. Operating the work clutch section 34a to block power transmission sets the mid PTO shaft 9 to a non-driven state, whereas operating the work clutch section 34a to permit power transmission drives the mid PTO shaft 9.
- the tractor T includes an oil-passage structure as shown in Fig. 4 .
- operating oil is supplied from a hydraulic pump P through a first oil passage 41 to a hydraulic power steering unit 38; and the operating oil from the power steering unit 38 is supplied through a second oil passage 42 to a valve unit V. Further, the operating oil from the valve unit V is supplied through a third oil passage 43 to the continuously variable transmission device 22.
- the hydraulic pump P may be driven by any one of an electric motor and the engine 4.
- the hydraulic circuit includes a first clutch control oil passage 44 configured to supply, to the front-wheel accelerating clutch 28a of the front-wheel accelerating device 28, operating oil having a pressure adjusted by the valve unit V to a set level; and a second clutch control oil passage 45 configured to supply the same operating oil to the PTO clutch 32.
- the power steering unit 38 is configured to operate a steering valve 38a in response to operation of the steering wheel 12, whereby operating oil is supplied and discharged between the steering valve 38a and a double-acting steering cylinder 19.
- the steering cylinder 19 is provided on the machine body A and configured to control the front wheels 1 .
- the continuously variable transmission device 22 includes the variable displacement pump 22a and the hydraulic motor 22b as described above, and uses the operating oil supplied through the third oil passage 43 as charge oil to be supplied to a circuit 22c between the variable displacement pump 22a and the hydraulic motor 22b.
- the transmission case 5 includes a side wall with an opening 5H.
- the valve unit V is attached to the transmission case 5 by a plurality of fixation bolts 49 at such a position as to cover the opening 5H.
- an outer surface a surface thereof exposed to the outside
- an opposite surface to the external surface is referred to as a "reverse surface”.
- the valve unit V includes a valve housing 50 having a pump port 51, a discharge port 52, a first control port 53 and a second control port 54.
- the discharge port 52 is formed in an inner surface of the valve housing 50.
- the second oil passage 42 in the form of a conduit is connected to the pump port 51; the third oil passage 43 in the form of a conduit is connected to the discharge port 52; the first clutch control oil passage 44 in the form of a conduit is connected to the first control port 53; and the second clutch control oil passage 45 in the form of a conduit is connected to the second control port 54. Since the first control port 53 is present on an inner surface of the valve housing 50, the first clutch control oil passage 44 enters the space inside the transmission case 5 through the opening 5H.
- the valve housing 50 contains a supply oil passage 55 configured to be supplied with operating oil from the pump port 51.
- the valve housing 50 further contains a pressure adjustment valve Va configured to adjust the pressure of the supply oil passage 55. That portion of the supply oil passage 55 which is present downstream of the pressure adjustment valve Va is connected to the discharge port 52.
- a first control oil passage 56 (an example of the "branch oil passage") and a second control oil passage 57 (an example of the "branch oil passage”) are connected to and branched out of the supply oil passage 55 at positions thereof between the pump port 51 and the pressure adjustment valve Va.
- the first control oil passage 56 is provided with a first control valve 58 in the form of a solenoid valve SV.
- the second control oil passage 57 is provided with a second control valve 59 in the form of a solenoid valve SV.
- the first control oil passage 56 extends from upstream of the first control valve 58 to downstream thereof, and the second control oil passage 57 extends from upstream of the second control valve 59 to downstream thereof.
- upstream refers to the upstream side with respect to the direction of the flow of operating oil from the hydraulic pump P.
- the solenoid valves SV include respective electromagnetic solenoid sections protruding backward from the back face of the valve housing 50. Each of the electromagnetic solenoid portions enters the opening 5H in the transmission case 5.
- the first control oil passage 56 is connected to the first clutch control oil passage 44, and the second control oil passage 57 is connected to the second clutch control oil passage 45.
- the pressure adjustment valve Va has configuration thereof in common with a relief valve. Specifically, as shown in Fig. 7 , the pressure adjustment valve Va includes a pressure adjustment valve body 61, a compression coil spring 62, a restriction member 63, and a plug 64 supporting the above members.
- the pressure adjustment valve Va keeps closing when the pressure of the supply oil passage 55 is smaller than a set value, and opens when the pressure of the supply oil passage 55 is equal to or greater than the set value.
- the pressure adjustment valve body 61 is so positioned as to be capable of opening and closing the supply oil passage 55.
- the spring 62 applies, to the pressure adjustment valve body 61, an urging force that keeps the pressure adjustment valve body 61 at a closed position when the supply oil passage 55 has a pressure smaller than a set value, and that allows the pressure adjustment valve body 61 to open when the pressure of the supply oil passage 55 is equal to or greater than the set value.
- the restriction member 63 is in the shape of a shaft that is present inside the coil of the spring 62 and that has an axis extending concentric with the center of the coil.
- the restriction member 63 is configured to abut against the pressure adjustment valve body 61 to restrict movement of the pressure adjustment valve body 61.
- the pressure adjustment valve body 61 is, when closed, separated from a protruding end of the restriction member 63 by a gap G.
- the restriction member 63 restricts the operation of the pressure adjustment valve body 61 so that the pressure adjustment valve body 61 will not be moved by an amount exceeding the gap G. This prevents the spring 62 from becoming plastically deformed by excessive compression and prevents the urging force of the spring 62 from becoming decreased, thereby maintaining its spring constant.
- the restriction member 63 integrally includes, at a base end thereof, a disc-shaped portion 63a abutting against an inner face of the plug 64.
- the spring 62 has an end thereof, opposite to the pressure adjustment valve body 61, contacted with the peripheral edge of the disc-shaped portion 63a. This allows the restriction member 63 to be oriented stably.
- a pressure on the supply oil passage 55 at a portion thereof upstream of the pressure adjustment valve Va depends on the urging force of the spring 62 of the pressure adjustment valve Va.
- Each of the first control port 53 connected to the first control oil passage 56 and the second control port 54 connected to the second control oil passage 57 serves to supply operating oil to a friction clutch.
- such a friction clutch can be kept engaged even with the operating oil having a lower pressure, compared with the pressure of operating oil to be supplied to a hydraulic cylinder that drives e.g. a bucket and an arm of an excavator adapted to be connected to a tractor.
- operating oil supplied through the first control port 53 and the second control port 54 has a relatively low pressure. This allows the pressure on the spring 62 to be reduced, and effectively prevents plastic deformation of the spring 62.
- the solenoid valves SV (namely, the first control valve 58 and the second control valve 59) basically share a configuration thereof as shown in Figs. 11 and 12 . Basically, reference signs in the figures depict those of the first control valve 58.
- each of the above-described first control oil passage 56 and second control oil passage 57 directly connected to the supply oil passage 55 extends in the valve housing 50 orthogonally to a virtual plane on which the supply oil passage 55 is present.
- each of a portion of the first control oil passage 56 downstream of the first control valve 58 and a portion of the second control oil passage 57 downstream of the second control valve 59 extends along a virtual plane parallel to the virtual plane on which the supply oil passage 55 is present.
- each solenoid valve SV is in the shape of a rotating body about an axis X as the center, and includes: an electromagnetic solenoid section that includes: an electromagnetic solenoid 71 configured to generate magnetic force; a plunger 72 made of a magnetic material and configured to be operated under the magnetic force; a compression spring body 73 configured to apply urging force that keeps the plunger 72 at a standard position; and a shaft body 74 configured to be operated together with the plunger 72.
- each electromagnetic solenoid section integrally includes a connection body 75.
- the shaft body 74 extends coaxial with the axis X and capable of being moved outward and inward along the axis X.
- connection body 75 integrally includes: a first fit-in portion 75a in the shape of a column coaxial with the axis X; a second fit-in portion 75b in the shape of a column coaxial with the axis X; and a large-diameter portion 75c in the shape of a disc coaxial with the axis X.
- the connection body 75 has a through hole coaxial with the axis X.
- the first fit-in portion 75a has the smallest diameter among the three portions, and is fitted in an end of the first control oil passage 56 (second control oil passage 57).
- the second fit-in portion 75b has a diameter larger than the diameter of the first fit-in portion 75a, and is fitted in a fitting depression 50a present in the valve housing 50 and coaxial with the first control oil passage 56 (second control oil passage 57).
- the large-diameter portion 75c has the largest diameter among the three portions, and abuts against the reverse surface (outer surface) of the valve housing 50.
- fitting depression 50a is connected to a portion of the first control oil passage 56 (second control oil passage 57) downstream of the first control valve 58 (second control valve 59).
- connection body 75 contains a ball-shaped valve body 76 in a valve space inside a boundary portion between the first fit-in portion 75a and the second fit-in portion 75b.
- the connection body 75 has a control hole portion 77 that is present in a radial direction and that is connected to the valve space at a boundary portion between the first fit-in portion 75a and the second fit-in portion 75b.
- the control hole portion 77 is connected to the fitting depression 50a.
- connection body 75 further has a drain hole portion 78 connected to the through hole at a boundary portion between the second fit-in portion 75b and the large-diameter portion 75c.
- the drain hole portion 78 is connected to a drain groove 50b in the reverse surface of the valve housing 50.
- the valve space has an abutting face 75s, which is a funnel-shaped inner face. While the electromagnetic solenoid 71 is not driven as shown in Fig. 12 , the compression spring body 73 applies an urging force via the shaft body 74 to the ball-shaped valve body 76, and this pressure keeps a sealed or closed state, in which the ball-shaped valve body 76 abuts against the abutting face 75s.
- the shaft body 74 is displaced in a direction away from the ball-shaped valve body 76 against the urging force of the compression spring body 73. This displacement releases the ball-shaped valve body 76 from the urging force of the compression spring body 73. Then, operating oil from the first control oil passage 56 (second control oil passage 57) connected to the supply oil passage 55 applies pressure to the ball-shaped valve body 76 so that the ball-shaped valve body 76 becomes apart from the abutting face 75s and abuts against the face opposite to the abutting face 75s. This prevents operating oil from flowing from the valve space into the drain hole portion 78.
- the solenoid valve SV becomes closed . This stops supply of operating oil to the front-wheel accelerating clutch 28a or the PTO clutch 32, and also starts discharge of operating oil for either of the friction clutches from the drain hole portion 78 into the drain groove 50b. This in turn disengages the friction clutch.
- the tractor T includes a hydraulic circuit configured as described above.
- the hydraulic circuit causes the pressure of operating oil supplied from the hydraulic pump P to the valve unit V to be increased by the pressure adjustment valve Va to a set value, and then causes the operating oil to be supplied to the PTO clutch 32 or the front-wheel accelerating clutch 28a of a multi-disc friction type. This prevents a slip of friction plates (incomplete clutching) resulting from insufficient pressure.
- the pressure adjustment valve Va is configured similarly to a relief valve; it includes a pressure adjustment valve body 61 and a spring 62. This eliminates the need to include a complicated valve as the pressure adjustment valve Va, and thereby prevents a cost increase.
- the pressure adjustment valve Va includes a restriction member 63.
- the pressure adjustment valve body 61 is, when closed, separated from a protruding end of the restriction member 63 by a gap G. When the pressure adjustment valve body 61 becomes open, the restriction member 63 restricts the operation of the pressure adjustment valve body 61 so that the pressure adjustment valve body 61 will not be moved by an amount exceeding the gap G. This prevents the spring 62 from becoming plastically deformed by excessive compression and prevents the urging force of the spring 62 from becoming decreased, thereby maintaining its spring constant.
- the valve unit V includes a single valve housing 50 that has a plurality of oil passages and that contains a pressure adjustment valve Va and a plurality of solenoid valves SV. This allows the hydraulic circuit to be configured and maintained easily as compared to, for example, an arrangement including a conduit connecting a pressure adjustment valve Va to a plurality of solenoid valves SV.
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- Engineering & Computer Science (AREA)
- General Engineering & Computer Science (AREA)
- Mechanical Engineering (AREA)
- Physics & Mathematics (AREA)
- Fluid Mechanics (AREA)
- Safety Valves (AREA)
- Hydraulic Clutches, Magnetic Clutches, Fluid Clutches, And Fluid Joints (AREA)
- Motor Power Transmission Devices (AREA)
- Control Of Fluid Gearings (AREA)
- Control Of Transmission Device (AREA)
Abstract
Description
- The present application claims priority of Japanese Patent Application No.
, the disclosure of which is hereby incorporated in its entirety by reference.2019-237396 filed on December 26, 2019 - The present invention relates to a valve unit including a pressure adjustment valve configured to adjust the pressure of operating oil.
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discloses a relief valve of a hydraulic, gradual increase type configured to adjust the pressure of operating oil to be supplied to a hydraulic clutch.JP H08-028601 A - In a valve unit thereof, a cylindrical valve case is housed in a valve housing; and a relief valve body and a control piston are housed in the valve case, with a spring being arranged between the relief valve body and the control piston.
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discloses an oil chamber that has a pump port communicating with an operating oil supply passage, and an oil drain port for discharging operating oil, wherein the pressure of the operating oil supply passage is applied to the control piston via an orifice.JP H08-028601 A - The relief valve in JPH08-028601A is configured to perform pressure control, wherein, when operating oil is to be supplied to the hydraulic clutch, the relief valve is configured to gradually increase the pressure of the operating oil first, and then raise the pressure of the operating oil to a required level.
- The relief valve disclosed in
is capable of gradually increasing the pressure on the clutch, and is thus capable of reducing a shock occurring when the clutch is engaged. The relief valve, however, has a complicated structure and leads to a cost increase.JP H08-028601 A - In a hydraulic circuit for a rotary tiller device or the like that is connectable to a tractor, for example, it requires transmission of a driving force to be permitted and blocked rapidly. In such a hydraulic circuit, it is supposedly sufficient to provide a pressure adjustment valve that may obtain a pressure necessary to keep the clutch engaged.
- Cost reduction may be realized if a pressure adjustment valve in the form of a relief valve is employed, including a valve body and a spring for urging the valve body to be closed. However, repeated compression of the spring decreases its urging force to be applied to the valve body, disadvantageously leading to inappropriate pressure adjustment.
- Under such circumstances, there is a need for a valve unit that may perform appropriate pressure adjustment continuously.
- In view of the above, an aspect of the present invention is as below:
A valve unit comprising: - a valve housing including: a supply oil passage configured to receive operating oil from a hydraulic pump, and a pressure adjustment valve configured to adjust a pressure of the supply oil passage,
- wherein the pressure adjustment valve includes:
- a pressure adjustment valve body configured to open and close the supply oil passage;
- a compression coil spring applying, to the pressure adjustment valve body, an urging force that keeps the pressure adjustment valve body at a closed position when the pressure of the supply oil passage is smaller than a set value and that allows the pressure adjustment valve body to open when the pressure of the supply oil passage is not smaller than the set value; and
- a restriction member configured to, when the pressure adjustment valve body becomes open against the urging force of the spring in response to a pressure of the operating oil, abut against the pressure adjustment valve body in such a manner as to restrict movement of the pressure adjustment valve body.
- The above characteristic arrangement involves keeping the pressure adjustment valve body at a closed position when the pressure of the supply oil passage is smaller than a set value and allowing the pressure adjustment valve body to open when the pressure of the supply oil passage is not smaller than the set value. This allows the supply oil passage to keep its pressure at not smaller than the set value. The above characteristic arrangement also includes a restriction member configured to restrict the amount of movement of the pressure adjustment valve body if the pressure of the supply oil passage has been increased sharply. This prevents the spring from becoming compressed greatly, and thereby prevents a decrease in its urging force.
- The above characteristic arrangement thereby allows a valve unit capable of continuing appropriate pressure adjustment to be produced without a cost increase.
- In one preferred embodiment:
- the pressure adjustment valve body has an operation axis along which the pressure adjustment valve body is operated,
- the spring includes a coil having a center, and
- the restriction member is in a shape of a shaft having an axis,
- wherein the operation axis of the pressure adjustment valve body, the center of the coil of the spring, and the axis of the restriction member extend concentric with one another, and
- the restriction member is present inside the coil of the spring.
- The above arrangement places a bar-shaped restriction member inside the coil of the spring. The restriction member can thus prevent excessive compression of the spring without the need to have a complicated structure.
- In one preferred embodiment:
- the hydraulic pump is provided for a work machine that includes a power steering unit of a hydraulic type and a continuously variable transmission device of a hydrostatic type,
- the supply oil passage receives, upstream of the pressure adjustment valve, the operating oil having passed through the power steering unit, and
- the operating oil downstream of the pressure adjustment valve in the supply oil passage is supplied to the continuously variable transmission device as charge oil.
- The above arrangement allows operating oil from the hydraulic pump to be supplied sequentially to the power steering unit, the valve unit, and the continuously variable transmission device in this order. The arrangement in this order allows (i) operating oil with a high pressure to be supplied to the power steering unit, (ii) operating oil with a pressure lower than the above pressure to be supplied via the valve unit to, for example, a hydraulic clutch, and (iii) operating oil with a pressure even lower than the above pressure to be supplied to the continuously variable transmission device as charge oil. The above arrangement thus makes it possible to avoid wasting operating oil and eliminates the need to include a plurality of hydraulic pumps.
- In one preferred embodiment:
- the valve housing includes a pump port through which the operating oil is supplied from the hydraulic pump to the supply oil passage, and a discharge port through which the operating oil downstream of the pressure adjustment valve in the supply oil passage is discharged,
- the valve housing includes a branch oil passage that is branched out of the supply oil passage and that is configured to receive the operating oil upstream of the pressure adjustment valve in the supply oil passage,
- the valve housing has a control port through which the operating oil from the branch oil passage exits, and
- there is provided a solenoid valve that is configured to electromagnetically open and close the branch oil passage.
- The above arrangement allows operating oil from the hydraulic pump to be supplied through the pump port to the supply oil passage. This allows the pressure adjustment valve to keep the pressure of the supply oil passage at not smaller than the set value. The above arrangement also allows operating oil from a portion of the supply oil passage which portion is upstream of the pressure adjustment valve to flow into a branch oil passage. This operating oil can then be supplied under control of a solenoid valve through the control port to an external hydraulic device. The above arrangement also allows operating oil discharged through the discharge port to be supplied to another hydraulic device if the pressure of the supply oil passage is not smaller than the set value.
- In addition thereto, the operating oil exiting through the control port may be supplied to a friction clutch, and the pressure set by the pressure adjustment valve may be a value sufficient to keep the friction clutch engaged.
- Typically, such a friction clutch can be kept engaged even with the operating oil having a lower pressure, compared with the pressure of operating oil to be supplied to a hydraulic cylinder that drives e.g. a bucket and an arm of an excavator adapted to be connected to a tractor. Thus, with the above arrangement, operating oil supplied through the control port has a relatively low pressure. This allows the pressure on the spring to be relatively small, and effectively prevents plastic deformation of the spring.
- Other aspects of the invention and advantages expected therefrom will be apparent upon reading following detailed description.
-
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Fig. 1 is a side view of a tractor; -
Fig. 2 is a top plan view of the tractor; -
Fig. 3 is a side view illustrating a power transmission arrangement of a transmission case; -
Fig. 4 is a hydraulic circuit diagram of the tractor; -
Fig. 5 is a side view of a valve unit attached to a transmission case; -
Fig. 6 is a perspective view of a valve unit; -
Fig. 7 is a view in section taken on VII-VII inFig. 8 ; -
Fig. 8 is a bottom plan view of a valve unit attached to the transmission case; -
Fig. 9 is a top plan view of a valve unit attached to a transmission case; -
Fig. 10 is a view in section taken on X-X inFig. 9 ; -
Fig. 11 is a view in section of a solenoid valve in its open state; -
Fig. 12 is a cross-sectional view of the solenoid valve in its closed state; and -
Fig. 13 is a diagram showing a hydraulic circuit according to Modified Embodiment (a). - An embodiment of the invention will be described hereinafter with reference to the drawings.
- As shown in
Figs. 1 and2 , a tractor T is illustrated as an exemplary work machine (work vehicle), including a machine body A provided with a pair of right and leftfront wheels 1 and a pair of right and leftrear wheels 2; anengine 4 covered by anengine hood 3 at a forward portion of the machine body A; and a driver section C at a rear portion of the machine body A. - In following description, "F" shown in
Figs. 1 and2 depicts to indicate the forward direction, "B" the backward direction, "U" the upward direction, "D" the downward direction, "R" the rightward direction, and "L" the leftward direction. - The tractor T further includes: a
transmission case 5 in an area extending from a central portion of the machine body A to the back end thereof for varying the driving force of theengine 4; alift cylinder 6 housed in thetransmission case 5 at a rear upper portion thereof; and a pair of right andleft lift arms 7 configured to be lifted and lowered in response to operation of thelift cylinder 6. - The tractor T still further includes: a rear power take-off (PTO)
shaft 8 protruding backward from the back end of thetransmission case 5 for transmitting a driving force to e.g. a rotary tiller work implement (not shown) that is supported by thelift arms 7 to be lifted and lowered. The tractor T further includes amid PTO shaft 9 protruding forward from a lower face of thetransmission case 5 for driving another work implement (not shown) to be provided under the machine body A. - The driver section C includes a driver's
seat 11 between right and left rear-wheel fenders 10, asteering wheel 12 in front of the driver'sseat 11, and afloor 13 under the driver'sseat 11. - The driver section C further includes: an output
power control lever 14 protruding upward from a lever guide on an upper face of the rear-wheel fender 10 on the left side of the driver'sseat 11; a lifting/loweringcontrol lever 15 protruding upward from a lever guide on an upper face of the rear-wheel fender 10 on the right of the driver'sseat 11; and a roll-over protection structure (ROPS)frame 16 standing erect behind the driver'sseat 11 and having an inverted U-letter shape. - The driver section C further includes an
accelerator pedal 17 on the right side of thefloor 13, and abrake pedal 18 on the left side of thefloor 13 at a forward portion thereof. - The output
power control lever 14 is configured to control a PTO clutch 32 (an example of the "friction clutch"; seeFig. 3 ) in thetransmission case 5 to switch the PTO clutch 32 between an engaged state to permit a driving force to be transmitted to therear PTO shaft 8, and a disengaged state to block transmission of the driving force. The lifting/loweringcontrol lever 15 is configured to control supply/discharge of operating oil to thelift cylinder 6 to thereby control the lifting/lowering operation of thelift arms 7. Incidentally, theROPS frame 16 includes pillar-shaped portions standing erect at right and left positions, respectively, behind the driver'sseat 11 and having upper ends thereof connected with each other. TheROPS frame 16 is configured to protect the driver seated on the driver'sseat 11 in the event of roll-over of the machine body A. - As shown in
Fig. 3 , thetransmission case 5 includes: amain drive shaft 21 configured to receive the driving force from theengine 4; a hydrostatic-type continuously variable transmission device 22 (hydrostatic transmission or HST) configured to steplessly vary (speed-change) the driving force from themain drive shaft 21; avaried output shaft 23 configured to transmit the driving force after it is varied steplessly by the continuouslyvariable transmission device 22; agear shift mechanism 24 configured to vary the driving force of thevaried output shaft 23; and adifferential gear 25 for therear wheels 2 configured to receive the driving force from thegear shift mechanism 24. - The continuously
variable transmission device 22 includes: avariable displacement pump 22a capable of changing the amount of operating oil to be discharged; and ahydraulic motor 22b configured to be rotated by the operating oil supplied from thevariable displacement pump 22a. The continuouslyvariable transmission device 22 is configured to steplessly adjust the drive rate of thehydraulic motor 22b by changing an amount of operating oil supplied from thevariable displacement pump 22a. The amount of operating oil supplied from thevariable displacement pump 22a is controlled depending on an amount of depression of theaccelerator pedal 17 in the driver section C. - The
gear shift mechanism 24 includes: a plurality of gears capable of increasing/decreasing (accelerating/decelerating) the drive rate; and a shift gear capable of selectively meshing with one of a plurality of gears, whereby the driver can manually operate the shift gear to select a travel speed. - The
transmission case 5 is provided with: anintermediate drive shaft 27 configured to receive the driving force of thevaried output shaft 23 via an intermediate powertransmission gear mechanism 26; a front-wheel accelerating device 28 capable of increasing the drive rate of theintermediate drive shaft 27; and a front-wheel drive shaft 29 configured to transmit the driving force from the front-wheel accelerating device 28 to thefront wheels 1. - The intermediate power
transmission gear mechanism 26 includes a front-wheelclutch section 26a capable of being manually operated to permit or block power transmission. Operating the front-wheelclutch section 26a to block power transmission sets thefront wheels 1 to a non-driven state, whereas operating the front-wheelclutch section 26a to permit power transmission drives thefront wheels 1. The front-wheelclutch section 26a is configured to be operated manually. - The front-
wheel accelerating device 28 includes: a hydraulic front-wheel accelerating clutch 28a (an example of the "friction clutch"; seeFig. 4 ); and an accelerating gear mechanism (not shown) capable of increasing the drive rate. The front-wheel accelerating clutch 28a is configured to be supplied with operating oil from a valve unit V as shown inFigs. 4 and5 . The front-wheel accelerating clutch 28a is configured to bring a plurality of friction plates into contact with one another in response to the pressure of the supplied operating oil, to thereby transmit a driving force. - The front-wheel accelerating clutch 28a is configured to be supplied with operating oil when the steering angle of the
front wheels 1 exceeds a set value. The front-wheel accelerating clutch 28a is supplied with no operating oil while thesteering wheel 12 is not turned greatly, e.g. when the machine body A is traveling straight. As a result, the driving force from theintermediate drive shaft 27 is transmitted to the front-wheel drive shaft 29 without varying the driving force, thereby allowing travel in a constant-rate driving state, in which thefront wheels 1 are driven at a circumferential speed equal to that of therear wheels 2. - On the other hand, when the
steering wheel 12 is turned greatly, the front-wheel accelerating clutch 28a is supplied with operating oil. As a result, the driving force of theintermediate drive shaft 27 is increased by the accelerating gear mechanism before transmitting it to the front-wheel drive shaft 29, thereby causing thefront wheels 1 to be driven at a circumferential speed higher than the circumferential speed of therear wheels 2 and allowing the machine body A to turn with a small radius. - The
transmission case 5 includes: awork drive shaft 31 arranged coaxial with a portion of themain drive shaft 21 which extends through the continuouslyvariable transmission device 22 in the front-back direction; the multi-disc friction type PTO clutch 32 configured to permit or block transmission of a driving force from themain drive shaft 21 to thework drive shaft 31; and awork transmission mechanism 33 configured to vary a driving force transmitted from thework drive shaft 31 to therear PTO shaft 8. - The
transmission case 5 further includes, at a lower portion thereof, alower drive shaft 35 configured to receive the driving force from thework drive shaft 31 via a workpower transmission gear 34, and a lower powertransmission gear mechanism 36 configured to transmit the driving force from thelower drive shaft 35 to themid PTO shaft 9. - The PTO clutch 32 is configured to bring a plurality of friction plates into contact with one another in response to supply of operating oil, to thereby transmit a driving force to the
rear PTO shaft 8 and themid PTO shaft 9. The workpower transmission gear 34 includes awork clutch section 34a capable of being manually operated to permit or block power transmission. Operating thework clutch section 34a to block power transmission sets themid PTO shaft 9 to a non-driven state, whereas operating thework clutch section 34a to permit power transmission drives themid PTO shaft 9. - The tractor T includes an oil-passage structure as shown in
Fig. 4 . In the oil-passage structure, operating oil is supplied from a hydraulic pump P through afirst oil passage 41 to a hydraulicpower steering unit 38; and the operating oil from thepower steering unit 38 is supplied through asecond oil passage 42 to a valve unit V. Further, the operating oil from the valve unit V is supplied through athird oil passage 43 to the continuouslyvariable transmission device 22. Incidentally, the hydraulic pump P may be driven by any one of an electric motor and theengine 4. - As shown in
Figs. 4 to 6 , the hydraulic circuit includes a first clutchcontrol oil passage 44 configured to supply, to the front-wheel accelerating clutch 28a of the front-wheel accelerating device 28, operating oil having a pressure adjusted by the valve unit V to a set level; and a second clutchcontrol oil passage 45 configured to supply the same operating oil to the PTO clutch 32. - The
power steering unit 38 is configured to operate asteering valve 38a in response to operation of thesteering wheel 12, whereby operating oil is supplied and discharged between the steeringvalve 38a and a double-actingsteering cylinder 19. Thesteering cylinder 19 is provided on the machine body A and configured to control thefront wheels 1 . - The continuously
variable transmission device 22 includes thevariable displacement pump 22a and thehydraulic motor 22b as described above, and uses the operating oil supplied through thethird oil passage 43 as charge oil to be supplied to acircuit 22c between thevariable displacement pump 22a and thehydraulic motor 22b. - As shown in
Figs. 6 ,8 and9 , thetransmission case 5 includes a side wall with anopening 5H. The valve unit V is attached to thetransmission case 5 by a plurality offixation bolts 49 at such a position as to cover theopening 5H. When the valve unit V is attached as such, a surface thereof exposed to the outside is referred to as an "outer surface", and an opposite surface to the external surface is referred to as a "reverse surface". - As shown in
Figs. 4-10 , the valve unit V includes avalve housing 50 having apump port 51, adischarge port 52, afirst control port 53 and asecond control port 54. In particular, thedischarge port 52 is formed in an inner surface of thevalve housing 50. When the valve unit V is attached to thetransmission case 5, thepump port 51 and thedischarge port 52 are positioned on a lower face of thevalve housing 50; thefirst control port 53 is positioned on an inner face of thevalve housing 50, and thesecond control port 54 is positioned on a back face of thevalve housing 50. - As shown in
Figs. 5 and 6 , with the above arrangement, thesecond oil passage 42 in the form of a conduit is connected to thepump port 51; thethird oil passage 43 in the form of a conduit is connected to thedischarge port 52; the first clutchcontrol oil passage 44 in the form of a conduit is connected to thefirst control port 53; and the second clutchcontrol oil passage 45 in the form of a conduit is connected to thesecond control port 54. Since thefirst control port 53 is present on an inner surface of thevalve housing 50, the first clutchcontrol oil passage 44 enters the space inside thetransmission case 5 through theopening 5H. - The
valve housing 50 contains asupply oil passage 55 configured to be supplied with operating oil from thepump port 51. Thevalve housing 50 further contains a pressure adjustment valve Va configured to adjust the pressure of thesupply oil passage 55. That portion of thesupply oil passage 55 which is present downstream of the pressure adjustment valve Va is connected to thedischarge port 52. - A first control oil passage 56 (an example of the "branch oil passage") and a second control oil passage 57 (an example of the "branch oil passage") are connected to and branched out of the
supply oil passage 55 at positions thereof between thepump port 51 and the pressure adjustment valve Va. The firstcontrol oil passage 56 is provided with afirst control valve 58 in the form of a solenoid valve SV. The secondcontrol oil passage 57 is provided with asecond control valve 59 in the form of a solenoid valve SV. - As shown in
Fig. 4 , the firstcontrol oil passage 56 extends from upstream of thefirst control valve 58 to downstream thereof, and the secondcontrol oil passage 57 extends from upstream of thesecond control valve 59 to downstream thereof. The term "upstream" above refers to the upstream side with respect to the direction of the flow of operating oil from the hydraulic pump P. - The solenoid valves SV (collective nomination of the
first control valve 58 and the second control valve 59) include respective electromagnetic solenoid sections protruding backward from the back face of thevalve housing 50. Each of the electromagnetic solenoid portions enters theopening 5H in thetransmission case 5. - As shown in
Fig. 4 , the firstcontrol oil passage 56 is connected to the first clutchcontrol oil passage 44, and the secondcontrol oil passage 57 is connected to the second clutchcontrol oil passage 45. - The pressure adjustment valve Va has configuration thereof in common with a relief valve. Specifically, as shown in
Fig. 7 , the pressure adjustment valve Va includes a pressureadjustment valve body 61, acompression coil spring 62, arestriction member 63, and aplug 64 supporting the above members. The pressure adjustment valve Va keeps closing when the pressure of thesupply oil passage 55 is smaller than a set value, and opens when the pressure of thesupply oil passage 55 is equal to or greater than the set value. - Specifically, the pressure
adjustment valve body 61 is so positioned as to be capable of opening and closing thesupply oil passage 55. Thespring 62 applies, to the pressureadjustment valve body 61, an urging force that keeps the pressureadjustment valve body 61 at a closed position when thesupply oil passage 55 has a pressure smaller than a set value, and that allows the pressureadjustment valve body 61 to open when the pressure of thesupply oil passage 55 is equal to or greater than the set value. - The
restriction member 63 is in the shape of a shaft that is present inside the coil of thespring 62 and that has an axis extending concentric with the center of the coil. When the pressureadjustment valve body 61 becomes open against the urging force of thespring 62 in response to the pressure of operating oil, therestriction member 63 is configured to abut against the pressureadjustment valve body 61 to restrict movement of the pressureadjustment valve body 61. In other words, as shown inFig. 7 , (i) the operation axis of the pressureadjustment valve body 61, along which the pressureadjustment valve body 61 is operated, (ii) the center of the coil of thespring 62 and (iii) the axis of therestriction member 63 in the shape of a shaft extend concentric with one another; and that therestriction member 63 is present inside the coil of thespring 62. - As shown in
Fig. 7 , the pressureadjustment valve body 61 is, when closed, separated from a protruding end of therestriction member 63 by a gap G. When the pressureadjustment valve body 61 becomes open, therestriction member 63 restricts the operation of the pressureadjustment valve body 61 so that the pressureadjustment valve body 61 will not be moved by an amount exceeding the gap G. This prevents thespring 62 from becoming plastically deformed by excessive compression and prevents the urging force of thespring 62 from becoming decreased, thereby maintaining its spring constant. - The
restriction member 63 integrally includes, at a base end thereof, a disc-shapedportion 63a abutting against an inner face of theplug 64. Thespring 62 has an end thereof, opposite to the pressureadjustment valve body 61, contacted with the peripheral edge of the disc-shapedportion 63a. This allows therestriction member 63 to be oriented stably. - Incidentally, a pressure on the
supply oil passage 55 at a portion thereof upstream of the pressure adjustment valve Va depends on the urging force of thespring 62 of the pressure adjustment valve Va. Each of thefirst control port 53 connected to the firstcontrol oil passage 56 and thesecond control port 54 connected to the secondcontrol oil passage 57 serves to supply operating oil to a friction clutch. - Typically, such a friction clutch can be kept engaged even with the operating oil having a lower pressure, compared with the pressure of operating oil to be supplied to a hydraulic cylinder that drives e.g. a bucket and an arm of an excavator adapted to be connected to a tractor. Thus, operating oil supplied through the
first control port 53 and thesecond control port 54 has a relatively low pressure. This allows the pressure on thespring 62 to be reduced, and effectively prevents plastic deformation of thespring 62. - The solenoid valves SV (namely, the
first control valve 58 and the second control valve 59) basically share a configuration thereof as shown inFigs. 11 and 12 . Basically, reference signs in the figures depict those of thefirst control valve 58. - A portion of each of the above-described first
control oil passage 56 and secondcontrol oil passage 57 directly connected to thesupply oil passage 55 extends in thevalve housing 50 orthogonally to a virtual plane on which thesupply oil passage 55 is present. In contrast, each of a portion of the firstcontrol oil passage 56 downstream of thefirst control valve 58 and a portion of the secondcontrol oil passage 57 downstream of thesecond control valve 59 extends along a virtual plane parallel to the virtual plane on which thesupply oil passage 55 is present. - As shown in
Figs. 11 and 12 , each solenoid valve SV is in the shape of a rotating body about an axis X as the center, and includes: an electromagnetic solenoid section that includes: anelectromagnetic solenoid 71 configured to generate magnetic force; aplunger 72 made of a magnetic material and configured to be operated under the magnetic force; acompression spring body 73 configured to apply urging force that keeps theplunger 72 at a standard position; and ashaft body 74 configured to be operated together with theplunger 72. Further, each electromagnetic solenoid section integrally includes aconnection body 75. Theshaft body 74 extends coaxial with the axis X and capable of being moved outward and inward along the axis X. - The
connection body 75 integrally includes: a first fit-inportion 75a in the shape of a column coaxial with the axis X; a second fit-inportion 75b in the shape of a column coaxial with the axis X; and a large-diameter portion 75c in the shape of a disc coaxial with the axis X. Theconnection body 75 has a through hole coaxial with the axis X. - The first fit-in
portion 75a has the smallest diameter among the three portions, and is fitted in an end of the first control oil passage 56 (second control oil passage 57). The second fit-inportion 75b has a diameter larger than the diameter of the first fit-inportion 75a, and is fitted in afitting depression 50a present in thevalve housing 50 and coaxial with the first control oil passage 56 (second control oil passage 57). The large-diameter portion 75c has the largest diameter among the three portions, and abuts against the reverse surface (outer surface) of thevalve housing 50. - In particular, the
fitting depression 50a is connected to a portion of the first control oil passage 56 (second control oil passage 57) downstream of the first control valve 58 (second control valve 59). - The
connection body 75 contains a ball-shapedvalve body 76 in a valve space inside a boundary portion between the first fit-inportion 75a and the second fit-inportion 75b. Theconnection body 75 has acontrol hole portion 77 that is present in a radial direction and that is connected to the valve space at a boundary portion between the first fit-inportion 75a and the second fit-inportion 75b. Thecontrol hole portion 77 is connected to thefitting depression 50a. - The
connection body 75 further has adrain hole portion 78 connected to the through hole at a boundary portion between the second fit-inportion 75b and the large-diameter portion 75c. Thedrain hole portion 78 is connected to adrain groove 50b in the reverse surface of thevalve housing 50. - The valve space has an
abutting face 75s, which is a funnel-shaped inner face. While theelectromagnetic solenoid 71 is not driven as shown inFig. 12 , thecompression spring body 73 applies an urging force via theshaft body 74 to the ball-shapedvalve body 76, and this pressure keeps a sealed or closed state, in which the ball-shapedvalve body 76 abuts against the abuttingface 75s. - In this closed state, operating oil is prevented from flowing into the first control oil passage 56 (second control oil passage 57) connected to the
supply oil passage 55. Further, when the closed state is achieved, operating oil at a portion of the first control oil passage 56 (second control oil passage 57) which portion is downstream of the solenoid valve SV is discharged through thecontrol hole portion 77, the valve space and thedrain hole portion 78 into thedrain groove 50b, thereby greatly reducing the pressure on the first clutch control oil passage 44 (second clutch control oil passage 45). - In contrast, when the
electromagnetic solenoid 71 has become driven as shown inFig. 11 , the solenoid valve SV becomes open. - Specifically, when the
electromagnetic solenoid 71 is driven, theshaft body 74 is displaced in a direction away from the ball-shapedvalve body 76 against the urging force of thecompression spring body 73. This displacement releases the ball-shapedvalve body 76 from the urging force of thecompression spring body 73. Then, operating oil from the first control oil passage 56 (second control oil passage 57) connected to thesupply oil passage 55 applies pressure to the ball-shapedvalve body 76 so that the ball-shapedvalve body 76 becomes apart from the abuttingface 75s and abuts against the face opposite to theabutting face 75s. This prevents operating oil from flowing from the valve space into thedrain hole portion 78. - This allows operating oil from the first control oil passage 56 (second control oil passage 57) connected to the
supply oil passage 55 to be supplied to the portion of the first control oil passage 56 (second control oil passage 57) downstream of the solenoid valve SV. This in turn allows operating oil to be supplied to the front-wheel accelerating clutch 28a or the PTO clutch 32. - When the
electromagnetic solenoid 71 has become non-driven, the solenoid valve SV becomes closed . This stops supply of operating oil to the front-wheel accelerating clutch 28a or the PTO clutch 32, and also starts discharge of operating oil for either of the friction clutches from thedrain hole portion 78 into thedrain groove 50b. This in turn disengages the friction clutch. - The tractor T includes a hydraulic circuit configured as described above. The hydraulic circuit causes the pressure of operating oil supplied from the hydraulic pump P to the valve unit V to be increased by the pressure adjustment valve Va to a set value, and then causes the operating oil to be supplied to the PTO clutch 32 or the front-wheel accelerating clutch 28a of a multi-disc friction type. This prevents a slip of friction plates (incomplete clutching) resulting from insufficient pressure.
- The pressure adjustment valve Va is configured similarly to a relief valve; it includes a pressure
adjustment valve body 61 and aspring 62. This eliminates the need to include a complicated valve as the pressure adjustment valve Va, and thereby prevents a cost increase. In particular, the pressure adjustment valve Va includes arestriction member 63. The pressureadjustment valve body 61 is, when closed, separated from a protruding end of therestriction member 63 by a gap G. When the pressureadjustment valve body 61 becomes open, therestriction member 63 restricts the operation of the pressureadjustment valve body 61 so that the pressureadjustment valve body 61 will not be moved by an amount exceeding the gap G. This prevents thespring 62 from becoming plastically deformed by excessive compression and prevents the urging force of thespring 62 from becoming decreased, thereby maintaining its spring constant. - The valve unit V includes a
single valve housing 50 that has a plurality of oil passages and that contains a pressure adjustment valve Va and a plurality of solenoid valves SV. This allows the hydraulic circuit to be configured and maintained easily as compared to, for example, an arrangement including a conduit connecting a pressure adjustment valve Va to a plurality of solenoid valves SV. - The present invention may be embodied in various ways other than the foregoing embodiment. In other/modified embodiments to be described below, identical reference numerals/marks are appended to any elements that are identical in function to those in the foregoing embodiment.
- (a) As shown in
Fig. 13 , the valve unit V may include avalve housing 50 containing a pressure adjustment valve Va and a single solenoid valve SV so that operating oil is supplied to a single friction clutch.
The valve unit V in modified embodiment (a) is similar to the valve unit V in the foregoing embodiment in that it includes afirst control valve 58 and oil passages for use in combination therewith. However, the valve unit V does not include asecond control valve 59 and oil passages to be used in combination therewith.
The valve unit V in modified embodiment (a) may be further modified, such that thevalve housing 50 contains a pressure adjustment valve Va, and three or more solenoid valves SV to supply operating oil to three or more elements associated therewith.
Production of a valve unit V configured as above may involve use of avalve housing 50 sized equally to an element configured to supply operating oil to a plurality of hydraulic actuators. This allows commonality of structures for attachment of a valve unit V to atransmission case 5 even for tractors T with different specifications, for example. - (b) The
restriction member 63 may be configured such that the gap G between the pressureadjustment valve body 61 in its closed state and the protruding end of therestriction member 63 may be adjusted. Specifically, therestriction member 63 has a base end with an external thread, while theplug 64 is provided with an internal thread engageable with the external thread. Then, theplug 64 may be operated externally to rotate therestriction member 63.
The modified embodiment (b) as configured above can not only prevent an excessive increase in the pressure of operating oil in thesupply oil passage 55, but also prevent a decrease in the urging force of thespring 62 by selecting a gap G that allows thespring 62 to have a small compressing amount. - (c) The
restriction member 63 is not necessarily in the shape of a shaft; it may be alternatively arranged to abut against e.g. a peripheral protruding portion of the pressureadjustment valve body 61 when the pressureadjustment valve body 61 is operated in a direction in which thespring 62 is compressed. This arrangement places therestriction member 63 outside the periphery of the coil of thespring 62, and thus allows therestriction member 63 to be used in position, even if the pressure adjustment valve Va includes aspring 62 with a small coil diameter. - (d) The
restriction member 63 may be integral with theplug 64. This reduces the number of parts. - (e) The
restriction member 63 may be integral with the pressureadjustment valve body 61. With this arrangement, when the pressureadjustment valve body 61 becomes open, therestriction member 63 is operated together with the pressureadjustment valve body 61, so that an end of therestriction member 63 abuts against theplug 64. The above arrangement can, however, prevent thespring 62 from becoming plastically deformed by excessive compression. - (f) The pressure
adjustment valve body 61 is not necessarily operated in the up-down direction; it may alternatively be operated in a lateral direction, for example. This allows the valve unit V to have any orientation.
Claims (5)
- A valve unit (V) comprising:a valve housing (50) including: a supply oil passage (55) configured to receive operating oil from a hydraulic pump (P), and a pressure adjustment valve (Va) configured to adjust a pressure of the supply oil passage (55),wherein the pressure adjustment valve (Va) includes:a pressure adjustment valve body (61) configured to open and close the supply oil passage (55);a compression coil spring (62) applying, to the pressure adjustment valve body (61), an urging force that keeps the pressure adjustment valve body (61) at a closed position when the pressure of the supply oil passage (55) is smaller than a set value and that allows the pressure adjustment valve body (61) to open when the pressure of the supply oil passage (55) is not smaller than the set value; anda restriction member (63) configured to, when the pressure adjustment valve body (61) becomes open against the urging force of the spring (62) in response to a pressure of the operating oil, abut against the pressure adjustment valve body (61) in such a manner as to restrict movement of the pressure adjustment valve body (61).
- The valve unit (V) according to claim 1, wherein
the pressure adjustment valve body (61) has an operation axis along which the pressure adjustment valve body (61) is operated,
the spring (62) includes a coil having a center, and
the restriction member (63) is in a shape of a shaft having an axis,
wherein the operation axis of the pressure adjustment valve body (61), the center of the coil of the spring (62), and the axis of the restriction member (63) extend concentric with one another, and
the restriction member (63) is present inside the coil of the spring (62). - The valve unit (V) according to claim 1 or 2, wherein
the hydraulic pump (P) is provided for a work machine (T) that includes a power steering unit (38) of a hydraulic type and a continuously variable transmission device (22) of a hydrostatic type,
the supply oil passage (55) is configured to receive, upstream of the pressure adjustment valve (Va), the operating oil having passed through the power steering unit (38), and
the operating oil downstream of the pressure adjustment valve (Va) in the supply oil passage (55) is configured to be supplied to the continuously variable transmission device (22) as charge oil. - The valve unit (V) according to any one of claims 1 to 3, wherein
the valve housing (50) includes a pump port (51) through which the operating oil is configured to be supplied from the hydraulic pump (P) to the supply oil passage (55), and a discharge port (52) through which the operating oil downstream of the pressure adjustment valve (Va) in the supply oil passage (55) is configured to be discharged,
the valve housing (50) includes a branch oil passage (56, 57) that is branched out of the supply oil passage (55) and that is configured to receive the operating oil upstream of the pressure adjustment valve (Va) in the supply oil passage (55),
the valve housing (50) has a control port (53, 54) through which the operating oil from the branch oil passage (56, 57) exits, and
there is provided a solenoid valve (SV) that is configured to electromagnetically open and close the branch oil passage (56, 57). - The valve unit (V) according to claim 4, wherein
the operating oil exiting through the control port (53, 54) is configured to be supplied to a friction clutch (28a, 32), and
the pressure set by the pressure adjustment valve (Va) is a value sufficient to keep the friction clutch (28a) engaged.
Applications Claiming Priority (1)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2019237396A JP7304807B2 (en) | 2019-12-26 | 2019-12-26 | Valve unit |
Publications (3)
| Publication Number | Publication Date |
|---|---|
| EP3872359A2 true EP3872359A2 (en) | 2021-09-01 |
| EP3872359A3 EP3872359A3 (en) | 2022-01-19 |
| EP3872359B1 EP3872359B1 (en) | 2023-12-13 |
Family
ID=73343814
Family Applications (1)
| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| EP20206776.5A Active EP3872359B1 (en) | 2019-12-26 | 2020-11-10 | Valve unit |
Country Status (3)
| Country | Link |
|---|---|
| US (1) | US11460080B2 (en) |
| EP (1) | EP3872359B1 (en) |
| JP (1) | JP7304807B2 (en) |
Families Citing this family (6)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US11365803B2 (en) * | 2020-07-21 | 2022-06-21 | Deere & Company | Hydraulic device with decoupled filler insert for hydraulic circuit volume reduction |
| JP7696866B2 (en) * | 2022-06-23 | 2025-06-23 | 株式会社クボタ | Work Machine |
| US20240110602A1 (en) * | 2022-09-29 | 2024-04-04 | Honda Motor Co., Ltd. | Hydraulic circuit for power transmission device |
| US12098060B1 (en) * | 2024-03-22 | 2024-09-24 | Roadtek Enterprises Inc. | Hydraulic jack assemblies |
| US12618399B2 (en) * | 2024-03-22 | 2026-05-05 | Roadtek Enterprises Inc. | Hydraulic piston pump assemblies |
| US12607271B2 (en) | 2024-03-22 | 2026-04-21 | Roadtek Enterprises Inc. | Hydraulic fluid release valve assemblies |
Citations (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPH0828601A (en) | 1994-07-21 | 1996-02-02 | Kanzaki Kokyukoki Mfg Co Ltd | Regulator device for hydraulic clutch |
Family Cites Families (14)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US2420554A (en) * | 1943-05-12 | 1947-05-13 | Int Harvester Co | Fluid pressure regulation and control apparatus |
| US4034563A (en) * | 1976-07-28 | 1977-07-12 | International Harvester Company | Load sensitive hydraulic system |
| JP3103688B2 (en) * | 1991-09-30 | 2000-10-30 | 光洋精工株式会社 | Hydraulic power steering device |
| JPH08156620A (en) * | 1994-12-06 | 1996-06-18 | Kanzaki Kokyukoki Mfg Co Ltd | Oil supply device for work vehicle |
| US5599247A (en) | 1994-06-15 | 1997-02-04 | Kanzaki Kokyukoki Mfg. Co., Ltd. | Transmission assembly for tractors |
| JP4040812B2 (en) | 1999-10-13 | 2008-01-30 | カヤバ工業株式会社 | Relief valve |
| US6601474B2 (en) * | 2000-09-05 | 2003-08-05 | Kanzaki Kokyukoki Mfg. Co., Ltd. | Hydrostatic transmission and power train for vehicle |
| DE60227126D1 (en) * | 2001-03-26 | 2008-07-31 | Kanzaki Kokyukoki Mfg Co Ltd | Transmission arrangement with power take-off for a work vehicle |
| JP3989744B2 (en) | 2002-02-01 | 2007-10-10 | 株式会社 神崎高級工機製作所 | Work vehicle transmission |
| DE102006061305B3 (en) | 2006-12-22 | 2008-07-10 | Hydac Filtertechnik Gmbh | Control device for hydraulic consumers |
| JP2009168218A (en) * | 2008-01-18 | 2009-07-30 | Toyota Motor Corp | Hydraulic tensioner |
| US9151301B2 (en) * | 2012-06-11 | 2015-10-06 | Ricon Corp. | Hydraulic system and arrangement for an access arrangement |
| JP6237746B2 (en) * | 2015-11-05 | 2017-11-29 | トヨタ自動車株式会社 | Hydraulic control circuit for transmission |
| US11009139B2 (en) | 2017-05-19 | 2021-05-18 | Aisin Aw Co., Ltd. | Relief valve |
-
2019
- 2019-12-26 JP JP2019237396A patent/JP7304807B2/en active Active
-
2020
- 2020-11-10 EP EP20206776.5A patent/EP3872359B1/en active Active
- 2020-11-11 US US17/095,720 patent/US11460080B2/en active Active
Patent Citations (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JPH0828601A (en) | 1994-07-21 | 1996-02-02 | Kanzaki Kokyukoki Mfg Co Ltd | Regulator device for hydraulic clutch |
Also Published As
| Publication number | Publication date |
|---|---|
| US11460080B2 (en) | 2022-10-04 |
| US20210199138A1 (en) | 2021-07-01 |
| EP3872359A3 (en) | 2022-01-19 |
| JP2021105426A (en) | 2021-07-26 |
| JP7304807B2 (en) | 2023-07-07 |
| EP3872359B1 (en) | 2023-12-13 |
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